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Performance of bare-tube bundle having small diameter tube: With and without partial bypass

机译:具有小直径管子的裸管束的性能:有和没有部分旁路

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摘要

The present study experimentally investigates the air-side performance of the staggered bare tube bundle having a small diameter tube in association with the partial bypass design. A total of ten arrangements are made and tested with corresponding surface reduction of 5%, 10%, and 20%, respectively. The measured heat transfer and pressure drop results of the conventional bare tube bundle agree well with the existing predictions. For the typical tube bundle, both heat transfer rate and heat transfer coefficient (HTC) first increase with the tube row and peaks at the fourth row. The HTC then remains almost unchanged when the tube row is further increased. Through the partial bypass designs, the front part of the tube bundle suffers some heat losses for having some fewer available surfaces but the rear part of the tube bundle will achieve a higher heat transfer rate for a higher temperature difference. The phenomenon of losing heat transfer in the front part but gaining performance in the rear part becomes more pronounced with the surface area reduction. For the partial bypass design with the same area reduction, it appears that the vertical reduction designs are marginally better than those lateral reduction designs. For comparisons of the effective thermal resistance subject to the same pumping power. It is clearly seen that the convectional design still outperforms all partial designs. As the pumping power becomes larger, the performance of the "partial bypass" designs are slowly and gradually improved to close to the traditional tube bundle. The difference is comparative small with the 5% and 10% "partial bypass" design. This trend indicates that the "partial bypass" is more beneficial at the operating condition of higher pumping power especially for the 5% surface reduction design.
机译:本研究实验性地研究了具有小直径管的交错式裸管束与部分旁路设计相关的空气侧性能。总共进行了十种布置和测试,分别减少了5%,10%和20%的表面。传统裸管束的传热和压降测量结果与现有预测非常吻合。对于典型的管束,传热速率和传热系数(HTC)都首先随管排而增加,并在第四排处达到峰值。然后,当进一步增加管排时,HTC几乎保持不变。通过部分旁路设计,管束的前部会因部分可用表面较少而遭受一些热损失,但管束的后部将针对较高的温差实现较高的传热速率。随着表面积的减小,在前部失去传热但在后部获得性能的现象变得更加明显。对于具有相同面积缩减的部分旁路设计,似乎垂直缩减设计要比那些横向缩减设计略胜一筹。为了比较在相同泵浦功率下的有效热阻。可以清楚地看出,对流设计仍然优于所有局部设计。随着泵浦功率的增大,“部分旁路”设计的性能会逐渐提高,以接近传统的管束。采用5%和10%的“部分旁路”设计,差异相对较小。这种趋势表明,“部分旁路”在较高泵浦功率的工作条件下更有利,特别是对于5%表面缩减的设计。

著录项

  • 来源
    《Letters in heat and mass transfer》 |2015年第10期|73-80|共8页
  • 作者单位

    Department of Mechanical Engineering National Chiao Tung University, Hsinchu 300, Taiwan;

    Material and Chemical Research Laboratories, Industrial Technology Research Institute, Chutung 307, Taiwan;

    Department of Mechanical Engineering National Chiao Tung University, Hsinchu 300, Taiwan,EE474, 1001 University Rd., National Chiao Tung University, Taiwan;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Air-side performance; Bare-tube bundle; Partial bypass;

    机译:空侧性能;裸管束;部分旁路;

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